Wang Fang, Gu Xiwei, Hong Haiying, Xia Qianqian, Zhang Yuxin, Song Ying, Li Baoxin, Fan Pan
Department of Pharmacology, College of Pharmacy, Harbin Medical University, Harbin, Heilongjiang Province, China.
Department of Ophthalmology, The Second Affiliated Hospital, Harbin Medical University, Harbin, Heilongjiang Province, China.
Basic Clin Pharmacol Toxicol. 2025 Oct;137(4):e70102. doi: 10.1111/bcpt.70102.
Cytochrome P450 3A4 (CYP3A4) is one of the most important members of the cytochrome P450 subfamily, which is involved in the catalytic process of many drug activation or deactivation. Meanwhile, it is also a risk factor for drug-induced toxic reactions. Our research investigates the impact of drugs on CYP3A4 enzyme activity and protein expression, and that CYP3A4 inhibition induced by drugs may exacerbate under hypoxia. Molecular docking has found that the drug has binding sites with amino acid residues in the active region of CYP3A4, which may affect the ability of the CYP3A4 enzyme to metabolize drugs. Twenty male Sprague Dawley rats were divided into two groups: control (FiO: 21%), hypoxia (FiO: 10%) for 14 days. Liver microsomes from hypoxic and normoxic rats were used for in vitro experiments by high-performance liquid chromatography. Drug concentration in blood in vivo was measured by LC-MS/MS. Further studies have revealed that drugs mediate the degradation of CYP3A4 ubiquitination-proteasome pathway through E3 ubiquitin ligase gp78 by immunoprecipitation, which may exacerbate the CYP3A4 inhibition under hypoxic conditions. These elucidated that the inhibition of CYP3A4 may worsen under pathological conditions (such as hypoxia), providing a basis for rational clinical medication to reduce or avoid drug interactions and toxic reactions.
细胞色素P450 3A4(CYP3A4)是细胞色素P450亚家族最重要的成员之一,参与许多药物的活化或失活催化过程。同时,它也是药物诱导毒性反应的一个危险因素。我们的研究调查了药物对CYP3A4酶活性和蛋白表达的影响,以及药物诱导的CYP3A4抑制在缺氧情况下可能会加剧。分子对接发现该药物与CYP3A4活性区域的氨基酸残基有结合位点,这可能会影响CYP3A4酶代谢药物的能力。将20只雄性Sprague Dawley大鼠分为两组:对照组(吸入氧分数:21%)、缺氧组(吸入氧分数:10%),持续14天。通过高效液相色谱法,将缺氧和常氧大鼠的肝微粒体用于体外实验。通过液相色谱-串联质谱法测定体内血液中的药物浓度。进一步研究表明,通过免疫沉淀法发现药物通过E3泛素连接酶gp78介导CYP3A4泛素化-蛋白酶体途径的降解,这可能会加剧缺氧条件下的CYP3A4抑制。这些结果阐明了CYP3A4的抑制在病理条件(如缺氧)下可能会恶化,为合理临床用药以减少或避免药物相互作用和毒性反应提供了依据。